我是node(express)和pg-promise的新手,还无法弄清楚如何将每个嵌套查询(loop)的结果添加到主json数组结果查询中。
我有两个表:帖子和评论。
CREATE TABLE post( id serial, content text not null, linkExterno text, usuario VARCHAR(50) NOT NULL REFERENCES usuarios(alias) ON UPDATE cascade ON DELETE cascade, multimedia text, ubicacation VARCHAR(100), likes integer default 0, time VARCHAR default now(), reported boolean default false, PRIMARY KEY (id) ); CREATE TABLE comment( id serial, idPost integer NOT NULL REFERENCES post(id) ON UPDATE cascade ON DELETE cascade, acount VARCHAR(50) NOT NULL REFERENCES users(alias) ON UPDATE cascade ON DELETE cascade, content text NOT NULL, date date default now(), PRIMARY KEY (id));
因此,我想将每个评论的结果添加到每个帖子中并返回帖子。我有这个,但是不起作用:
con.task(t => { return t.any('select *, avatar from post, users where user= $1 and user = alias ORDER BY time DESC LIMIT 10 OFFSET $2', [username, pos]) .then(posts => { if(posts.length > 0){ for (var post of posts){ post.coments = t.any('select * from comment where idPost = $1 ', post.id); } } }); }).then(posts => { res.send(posts); }).catch(error => { console.log(error); });
答案:
选项1(最佳选择) :
通过JSON到psql进行单个查询( JSON查询 )
参见@ vitaly-t的回答
要么
使用ajax异步获取嵌套数据。
选项2 :
function buildTree(t) { return t.map("select *, avatar from publicacion, usuarios where usuario = $1 and usuario = alias ORDER BY hora DESC LIMIT 10 OFFSET $2", [username, cantidad], posts => { return t.any('select * from comentario where idPublicacion = $1', posts.id) .then(coments => { posts.coments = coments; console.log(posts.coments); return posts; }); }).then(t.batch); // settles the array of generated promises } router.get('/publicaciones', function (req, res) { cantidad = req.query.cantidad || 0; //num de publicaciones que hay username = req.session.user.alias; con.task(buildTree) .then(data => { res.send(data); }) .catch(error => { console.log(error); }); });
选项3(异步) :
try{ var posts = await con.any('select *, avatar from post, users where user = $1 and user = alias ORDER BY time DESC LIMIT 10 OFFSET $2', [username, q]) for (var post of posts){ post.coments = await con.any('select * from comment where idPublictcion = $1', post.id); } }catch(e){ console.log(e); }
我是pg-promise的作者;)
con.task(t => { const a = post => t.any('SELECT * FROM comment WHERE idPost = $1', post.id) .then(comments => { post.comments = comments; return post; }); return t.map('SELECT *, avatar FROM post, users WHERE user = $1 AND user = alias ORDER BY time DESC LIMIT 10 OFFSET $2', [username, pos], a) .then(t.batch); }) .then(posts => { res.send(posts); }) .catch(error => { console.log(error); });
更新
如果您不想一路使用JSON查询方法,那么以下方法将比原始解决方案更好地扩展,因为我们将所有子查询连接起来,然后将它们作为一个查询执行:
con.task(async t => { const posts = await t.any('SELECT *, avatar FROM post, users WHERE user = $1 AND user = alias ORDER BY time DESC LIMIT 10 OFFSET $2', [username, pos]); const a = post => ({query: 'SELECT * FROM comment WHERE idPost = ${id}', values: post}); const queries = pgp.helpers.concat(posts.map(a)); await t.multi(queries) .then(comments => { posts.forEach((p, index) => { p.comments = comments[index]; }); }); return posts; }) .then(posts => { res.send(posts); }) .catch(error => { console.log(error); });
查看API: